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Cavity engineering of solid-state materials without external driving

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arxiv 2502.03172 v1 pith:U6L7H5BF submitted 2025-02-05 cond-mat.mtrl-sci physics.opticsquant-ph

classification cond-mat.mtrl-sciphysics.opticsquant-ph
keywords materialscavityfieldconfinedengineeringfieldsinsideproperties
verification ladder T0 review T1 audit T2 compute T3 formal
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Confining electromagnetic fields inside an optical cavity can enhance the light-matter coupling between quantum materials embedded inside the cavity and the confined photon fields. When the interaction between the matter and the photon fields is strong enough, even the quantum vacuum field fluctuations of the photons confined in the cavity can alter the properties of the cavity-embedded solid-state materials at equilibrium and room temperature. This approach to engineering materials with light avoids fundamental issues of laser-induced transient matter states. To clearly differentiate this field from phenomena in driven systems, we call this emerging field cavity materials engineering. In this review, we first present theoretical frameworks, especially, ab initio methods, for describing light-matter interactions in solid-state materials embedded inside a realistic optical cavity. Next, we overview a few experimental breakthroughs in this domain, detailing how the ground state properties of materials can be altered within such confined photonic environments. Moreover, we discuss state-of-the-art theoretical proposals for tailoring material properties within cavities. Finally, we outline the key challenges and promising avenues for future research in this exciting field.

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    An asynchronous periodic drive of a BEC in two crossed cavities stabilizes intertwined Landau, multicomponent time-crystalline, and Landau-time-crystalline orders.

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